Brain oscillatory signatures of motor tasks

被引:65
作者
Ramos-Murguialday, Ander [1 ,2 ]
Birbaumer, Niels [1 ,3 ]
机构
[1] Univ Tubingen, Inst Med Psychol & Behav Neurobiol, D-72076 Tubingen, Germany
[2] TECNALIA, San Sebastian, Spain
[3] Osped San Camillo, IRCCS, Lido De Venezia, Italy
基金
中国国家自然科学基金;
关键词
neuroprostheses; motor action; EEG; proprioceptive feedback; EVENT-RELATED DESYNCHRONIZATION; MOVEMENT BETA SYNCHRONIZATION; PASSIVE FINGER MOVEMENTS; MU-RHYTHM; CORTICAL POTENTIALS; COMPUTER INTERFACE; STROKE REHABILITATION; KINESTHETIC ILLUSION; SENSORIMOTOR CORTEX; CEREBRAL-CORTEX;
D O I
10.1152/jn.00467.2013
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Noninvasive brain-computer-interfaces (BCI) coupled with prosthetic devices were recently introduced in the rehabilitation of chronic stroke and other disorders of the motor system. These BCI systems and motor rehabilitation in general involve several motor tasks for training. This study investigates the neurophysiological bases of an EEG-oscillation-driven BCI combined with a neuroprosthetic device to define the specific oscillatory signature of the BCI task. Controlling movements of a hand robotic orthosis with motor imagery of the same movement generates sensorimotor rhythm oscillation changes and involves three elements of tasks also used in stroke motor rehabilitation: passive and active movement, motor imagery, and motor intention. We recorded EEG while nine healthy participants performed five different motor tasks consisting of closing and opening of the hand as follows: 1) motor imagery without any external feedback and without overt hand movement, 2) motor imagery that moves the orthosis proportional to the produced brain oscillation change with online proprioceptive and visual feedback of the hand moving through a neuroprosthetic device (BCI condition), 3) passive and 4) active movement of the hand with feedback (seeing and feeling the hand moving), and 5) rest. During the BCI condition, participants received contingent online feedback of the decrease of power of the sensorimotor rhythm, which induced orthosis movement and therefore proprioceptive and visual information from the moving hand. We analyzed brain activity during the five conditions using time-frequency domain bootstrap-based statistical comparisons and Morlet transforms. Activity during rest was used as a reference. Significant contralateral and ipsilateral event-related desynchronization of sensorimotor rhythm was present during all motor tasks, largest in contralateral-postcentral, medio-central, and ipsilateral-precentral areas identifying the ipsilateral precentral cortex as an integral part of motor regulation. Changes in task-specific frequency power compared with rest were similar between motor tasks, and only significant differences in the time course and some narrow specific frequency bands were observed between motor tasks. We identified EEG features representing active and passive proprioception (with and without muscle contraction) and active intention and passive involvement (with and without voluntary effort) differentiating brain oscillations during motor tasks that could substantially support the design of novel motor BCI-based rehabilitation therapies. The BCI task induced significantly different brain activity compared with the other motor tasks, indicating neural processes unique to the use of body actuators control in a BCI context.
引用
收藏
页码:3663 / 3682
页数:20
相关论文
共 96 条
[41]   Post-movement beta synchronization after kinesthetic illusion, active and passive movements [J].
Keinrath, Claudia ;
Wriessnegger, Selina ;
Mueller-Putz, Gernot R. ;
Pfurtscheller, Gert .
INTERNATIONAL JOURNAL OF PSYCHOPHYSIOLOGY, 2006, 62 (02) :321-327
[42]   EEG alpha oscillations: The inhibition-timing hypothesis [J].
Klimesch, Wolfgang ;
Sauseng, Paul ;
Hanslmayr, Simon .
BRAIN RESEARCH REVIEWS, 2007, 53 (01) :63-88
[43]   Alpha-band oscillations, attention, and controlled access to stored information [J].
Klimesch, Wolfgang .
TRENDS IN COGNITIVE SCIENCES, 2012, 16 (12) :606-617
[44]   Timing and localization of movement-related spectral changes in the human peri-Rolandic cortex: Intracranial recordings [J].
Klopp, J ;
Marinkovic, K ;
Clarke, J ;
Chauvel, P ;
Nenov, V ;
Halgren, E .
NEUROIMAGE, 2001, 14 (02) :391-405
[45]   Corticostriatal plasticity is necessary for learning intentional neuroprosthetic skills [J].
Koralek, Aaron C. ;
Jin, Xin ;
Ii, John D. Long ;
Costa, Rui M. ;
Carmena, Jose M. .
NATURE, 2012, 483 (7389) :331-335
[46]   Activation of ipsilateral primary sensorimotor cortex by median nerve stimulation [J].
Korvenoja, A ;
Wikstrom, H ;
Huttunen, J ;
Virtanan, J ;
Laine, P ;
Aronen, HJ ;
Seppalainen, AM ;
Ilmoniemi, RJ .
NEUROREPORT, 1995, 6 (18) :2589-2593
[47]   Brain activation during execution and motor imagery of novel and skilled sequential hand movements [J].
Lacourse, MG ;
Orr, ELR ;
Cramer, SC ;
Cohen, MJ .
NEUROIMAGE, 2005, 27 (03) :505-519
[48]   Je pense donc je fais: transcranial direct current stimulation modulates brain oscillations associated with motor imagery and movement observation [J].
Lapenta, Olivia M. ;
Minati, Ludovico ;
Fregni, Felipe ;
Boggio, Paulo S. .
FRONTIERS IN HUMAN NEUROSCIENCE, 2013, 7
[49]   CORTICAL POTENTIALS RELATED TO VOLUNTARY AND PASSIVE FINGER MOVEMENTS RECORDED FROM SUBDURAL ELECTRODES IN HUMANS [J].
LEE, BI ;
LUDERS, H ;
LESSER, RP ;
DINNER, DS ;
MORRIS, HH .
ANNALS OF NEUROLOGY, 1986, 20 (01) :32-37
[50]   Event-related coherence and event-related desynchronization/synchronization in the 10 Hz and 20 Hz EEG during self-paced movements [J].
Leocani, L ;
Toro, C ;
Manganotti, P ;
Zhuang, P ;
Hallett, M .
EVOKED POTENTIALS-ELECTROENCEPHALOGRAPHY AND CLINICAL NEUROPHYSIOLOGY, 1997, 104 (03) :199-206